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The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite

Plasmodium falciparum is the most lethal of human-infective malaria parasites. A hallmark of P. falciparum malaria is extensive remodeling of host erythrocytes by the parasite, which facilitates the development of virulence properties such as host cell adhesion to the endothelial lining of the micro...

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Autores principales: Day, Jemma, Passecker, Armin, Beck, Hans-Peter, Vakonakis, Ioannis
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Federation of American Societies for Experimental Biology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6894070/
https://www.ncbi.nlm.nih.gov/pubmed/31690116
http://dx.doi.org/10.1096/fj.201901741R
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author Day, Jemma
Passecker, Armin
Beck, Hans-Peter
Vakonakis, Ioannis
author_facet Day, Jemma
Passecker, Armin
Beck, Hans-Peter
Vakonakis, Ioannis
author_sort Day, Jemma
collection PubMed
description Plasmodium falciparum is the most lethal of human-infective malaria parasites. A hallmark of P. falciparum malaria is extensive remodeling of host erythrocytes by the parasite, which facilitates the development of virulence properties such as host cell adhesion to the endothelial lining of the microvasculature. Host remodeling is mediated by a large complement of parasite proteins exported to the erythrocyte; among them is a single heat shock protein (Hsp)70–class protein chaperone, P. falciparum Hsp70-x (PfHsp70-x). PfHsp70-x was previously shown to assist the development of virulent cytoadherence characteristics. Here, we show that PfHsp70-x also supports parasite growth under elevated temperature conditions that simulate febrile episodes, especially at the beginning of the parasite life cycle when most of host cell remodeling takes place. Biochemical and biophysical analyses of PfHsp70-x, including crystallographic structures of its catalytic domain and the J-domain of its stimulatory Hsp40 cochaperone, suggest that PfHsp70-x is highly similar to human Hsp70 chaperones endogenous to the erythrocyte. Nevertheless, our results indicate that selective inhibition of PfHsp70-x function using small molecules may be possible and highlight specific sites of its catalytic domain as potentially of high interest. We discuss the likely roles of PfHsp70-x and human chaperones in P. falciparum biology and how specific inhibitors may assist us in disentangling their relative contributions.—Day, J., Passecker, A., Beck, H.-P., Vakonakis, I. The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite.
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spelling pubmed-68940702019-12-10 The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite Day, Jemma Passecker, Armin Beck, Hans-Peter Vakonakis, Ioannis FASEB J Research Plasmodium falciparum is the most lethal of human-infective malaria parasites. A hallmark of P. falciparum malaria is extensive remodeling of host erythrocytes by the parasite, which facilitates the development of virulence properties such as host cell adhesion to the endothelial lining of the microvasculature. Host remodeling is mediated by a large complement of parasite proteins exported to the erythrocyte; among them is a single heat shock protein (Hsp)70–class protein chaperone, P. falciparum Hsp70-x (PfHsp70-x). PfHsp70-x was previously shown to assist the development of virulent cytoadherence characteristics. Here, we show that PfHsp70-x also supports parasite growth under elevated temperature conditions that simulate febrile episodes, especially at the beginning of the parasite life cycle when most of host cell remodeling takes place. Biochemical and biophysical analyses of PfHsp70-x, including crystallographic structures of its catalytic domain and the J-domain of its stimulatory Hsp40 cochaperone, suggest that PfHsp70-x is highly similar to human Hsp70 chaperones endogenous to the erythrocyte. Nevertheless, our results indicate that selective inhibition of PfHsp70-x function using small molecules may be possible and highlight specific sites of its catalytic domain as potentially of high interest. We discuss the likely roles of PfHsp70-x and human chaperones in P. falciparum biology and how specific inhibitors may assist us in disentangling their relative contributions.—Day, J., Passecker, A., Beck, H.-P., Vakonakis, I. The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite. Federation of American Societies for Experimental Biology 2019-12 2019-11-14 /pmc/articles/PMC6894070/ /pubmed/31690116 http://dx.doi.org/10.1096/fj.201901741R Text en © The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 4.0 International (CC BY 4.0) (http://creativecommons.org/licenses/by/4.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Day, Jemma
Passecker, Armin
Beck, Hans-Peter
Vakonakis, Ioannis
The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite
title The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite
title_full The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite
title_fullStr The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite
title_full_unstemmed The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite
title_short The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite
title_sort plasmodium falciparum hsp70-x chaperone assists the heat stress response of the malaria parasite
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6894070/
https://www.ncbi.nlm.nih.gov/pubmed/31690116
http://dx.doi.org/10.1096/fj.201901741R
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